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Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS

The majority of excitatory synapses in the mammalian CNS are formed on dendritic spines1, and spine morphology and distribution are critical for synaptic transmission2–6, synaptic integration and plasticity7. Here, we show that a secreted semaphorin, Sema3F, is a negative regulator of spine developm...

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Autores principales: Tran, Tracy S., Rubio, Maria E., Clem, Roger L., Johnson, Dontais, Case, Lauren, Tessier-Lavigne, Marc, Huganir, Richard L., Ginty, David D., Kolodkin, Alex L.
Formato: Texto
Lenguaje:English
Publicado: 2009
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2842559/
https://www.ncbi.nlm.nih.gov/pubmed/20010807
http://dx.doi.org/10.1038/nature08628
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author Tran, Tracy S.
Rubio, Maria E.
Clem, Roger L.
Johnson, Dontais
Case, Lauren
Tessier-Lavigne, Marc
Huganir, Richard L.
Ginty, David D.
Kolodkin, Alex L.
author_facet Tran, Tracy S.
Rubio, Maria E.
Clem, Roger L.
Johnson, Dontais
Case, Lauren
Tessier-Lavigne, Marc
Huganir, Richard L.
Ginty, David D.
Kolodkin, Alex L.
author_sort Tran, Tracy S.
collection PubMed
description The majority of excitatory synapses in the mammalian CNS are formed on dendritic spines1, and spine morphology and distribution are critical for synaptic transmission2–6, synaptic integration and plasticity7. Here, we show that a secreted semaphorin, Sema3F, is a negative regulator of spine development and synaptic structure. Mice with null mutations in genes encoding Sema3F, and its holoreceptor components neuropilin-2 (Npn-2) and plexinA3 (PlexA3), exhibit increased dentate gyrus (DG) granule cell (GC) and cortical layer V pyramidal neuron spine number and size, and also aberrant spine distribution. Moreover, Sema3F promotes loss of spines and excitatory synapses in dissociated neurons in vitro, and in Npn-2(−/−) brain slices cortical layer V and DG GCs exhibit increased mEPSC frequency. In contrast, a distinct Sema3A–Npn-1/PlexA4 signaling cascade controls basal dendritic arborization in layer V cortical neurons but does not influence spine morphogenesis or distribution. These disparate effects of secreted semaphorins are reflected in the restricted dendritic localization of Npn-2 to apical dendrites and of Npn-1 to all dendrites of cortical pyramidal neurons. Therefore, Sema3F signaling controls spine distribution along select dendritic processes, and distinct secreted semaphorin signaling events orchestrate CNS connectivity through the differential control of spine morphogenesis, synapse formation, and the elaboration of dendritic morphology.
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spelling pubmed-28425592010-06-24 Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS Tran, Tracy S. Rubio, Maria E. Clem, Roger L. Johnson, Dontais Case, Lauren Tessier-Lavigne, Marc Huganir, Richard L. Ginty, David D. Kolodkin, Alex L. Nature Article The majority of excitatory synapses in the mammalian CNS are formed on dendritic spines1, and spine morphology and distribution are critical for synaptic transmission2–6, synaptic integration and plasticity7. Here, we show that a secreted semaphorin, Sema3F, is a negative regulator of spine development and synaptic structure. Mice with null mutations in genes encoding Sema3F, and its holoreceptor components neuropilin-2 (Npn-2) and plexinA3 (PlexA3), exhibit increased dentate gyrus (DG) granule cell (GC) and cortical layer V pyramidal neuron spine number and size, and also aberrant spine distribution. Moreover, Sema3F promotes loss of spines and excitatory synapses in dissociated neurons in vitro, and in Npn-2(−/−) brain slices cortical layer V and DG GCs exhibit increased mEPSC frequency. In contrast, a distinct Sema3A–Npn-1/PlexA4 signaling cascade controls basal dendritic arborization in layer V cortical neurons but does not influence spine morphogenesis or distribution. These disparate effects of secreted semaphorins are reflected in the restricted dendritic localization of Npn-2 to apical dendrites and of Npn-1 to all dendrites of cortical pyramidal neurons. Therefore, Sema3F signaling controls spine distribution along select dendritic processes, and distinct secreted semaphorin signaling events orchestrate CNS connectivity through the differential control of spine morphogenesis, synapse formation, and the elaboration of dendritic morphology. 2009-12-13 2009-12-24 /pmc/articles/PMC2842559/ /pubmed/20010807 http://dx.doi.org/10.1038/nature08628 Text en Users may view, print, copy, download and text and data- mine the content in such documents, for the purposes of academic research, subject always to the full Conditions of use: http://www.nature.com/authors/editorial_policies/license.html#terms
spellingShingle Article
Tran, Tracy S.
Rubio, Maria E.
Clem, Roger L.
Johnson, Dontais
Case, Lauren
Tessier-Lavigne, Marc
Huganir, Richard L.
Ginty, David D.
Kolodkin, Alex L.
Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title_full Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title_fullStr Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title_full_unstemmed Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title_short Secreted Semaphorins Control Spine Distribution and Morphogenesis in the Postnatal CNS
title_sort secreted semaphorins control spine distribution and morphogenesis in the postnatal cns
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC2842559/
https://www.ncbi.nlm.nih.gov/pubmed/20010807
http://dx.doi.org/10.1038/nature08628
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